Coordinate expression of multiple bacterial carotenoid genes in canola leading to altered carotenoid production

被引:81
|
作者
Ravanello, MP [1 ]
Ke, DY [1 ]
Alvarez, J [1 ]
Huang, BH [1 ]
Shewmaker, CK [1 ]
机构
[1] Monsanto Co, Davis, CA 95616 USA
关键词
D O I
10.1016/j.ymben.2003.08.001
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Carotenoids have drawn much attention recently because of their potentially positive benefits to human health as well as their utility in both food and animal feed. Previous work in canola (Brassica napus) seed over-expressing the bacterial phytoene synthase gene (crtB) demonstrated a change in carotenoid content, such that the total levels of carotenoids, including phytoene and downstream metabolites like beta-carotene, were elevated 50-fold, with the ratio of beta- to alpha-carotene being 2 : 1. This result raised the possibility that the composition of metabolites in this pathway could be modified further in conjunction with the increased flux obtained with crtB. Here we report on the expression of additional bacterial genes for the enzymes geranylgeranyl diphosphate synthase (crtE), phytoene desaturase (crtI) and lycopene cyclase (crtY and the plant B. napus lycopene beta-cyclase) engineered in conjunction with phytoene synthase (crtB) in transgenic canola seed. Analysis of the carotenoid levels by HPLC revealed a 90% decrease in phytoene levels for the double construct expressing crtB in conjunction with crtI. The transgenic seed from all the double constructs, including the one expressing the bacterial crtB and the plant lycopene beta-cyclase showed an increase in the levels of total carotenoid similar to that previously observed by expressing crtB alone but minimal effects were observed with respect to the ratio of beta- to alpha-carotene compared to the original construct. However, the beta- to alpha-carotene ratio was increased from 2 : 1 to 3 : 1 when a triple construct consisting of the bacterial phytoene synthase, phytoene desaturase and lycopene cyclase genes were expressed together. This result suggests that the bacterial genes may form an aggregate complex that allows in vivo activity of all three proteins through substrate channeling. This finding should allow further manipulation of the carotenoid biosynthetic pathway for downstream products with enhanced agronomic, animal feed and human nutritional values. (C) 2003 Elsevier Inc. All rights reserved.
引用
收藏
页码:255 / 263
页数:9
相关论文
共 50 条
  • [31] ANALYSIS OF CAROTENOID ACCUMULATION AND EXPRESSION OF CAROTENOID BIOSYNTHESIS GENES IN DIFFERENT ORGANS OF CHINESE CABBAGE (BRASSICA RAPA SUBSP PEKINENSIS)
    Tuan, Pham Anh
    Kim, Jae Kwang
    Lee, Jeongyeo
    Park, Woo Tae
    Kwon, Do Yeon
    Kim, Yeon Bok
    Kim, Haeng Hoon
    Kim, Hye Ran
    Park, Sang Un
    EXCLI JOURNAL, 2012, 11 : 508 - 516
  • [32] Lateral Transfer of Genes from Fungi Underlies Carotenoid Production in Aphids
    Moran, Nancy A.
    Jarvik, Tyler
    SCIENCE, 2010, 328 (5978) : 624 - 627
  • [33] Identification, Characterization, and Expression Analysis of Carotenoid Biosynthesis Genes and Carotenoid Accumulation in Watercress (Nasturtium officinale R. Br.)
    Sathasivam, Ramaraj
    Bong, Sun Ju
    Park, Chang Ha
    Kim, Ji Hyun
    Kim, Jae Kwang
    Park, Sang Un
    ACS OMEGA, 2022, 7 (01): : 430 - 442
  • [34] Molecular Characterization, Expression Analysis of Carotenoid, Xanthophyll, Apocarotenoid Pathway Genes, and Carotenoid and Xanthophyll Accumulation in Chelidonium majus L.
    Sathasivam, Ramaraj
    Yeo, Hyeon Ji
    Park, Chang Ha
    Choi, Minsol
    Kwon, Haejin
    Sim, Ji Eun
    Park, Sang Un
    Kim, Jae Kwang
    PLANTS-BASEL, 2021, 10 (08):
  • [35] Molecular Characterization of Carotenoid Cleavage Dioxygenases and the Effect of Gibberellin, Abscisic Acid, and Sodium Chloride on the Expression of Genes Involved in the Carotenoid Biosynthetic Pathway and Carotenoid Accumulation in the Callus of Scutellaria baicalensis Georgi
    Pham Anh Tuan
    Kim, Jae Kwang
    Lee, Sanghyun
    Chae, Soo Cheon
    Park, Sang Un
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2013, 61 (23) : 5565 - 5572
  • [36] Accumulation of carotenoids and expression of carotenoid biosynthetic genes and carotenoid cleavage dioxygenase genes during fruit maturation in the juice sacs of 'Tamami,' 'Kiyomi' tangor, and 'Wilking' mandarin
    Kato, Masaya
    Matsumoto, Hikaru
    Ikoma, Yoshinori
    Kuniga, Takeshi
    Nakajima, Naoko
    Yoshida, Toshio
    Yano, Masamichi
    JOURNAL OF THE JAPANESE SOCIETY FOR HORTICULTURAL SCIENCE, 2007, 76 (02): : 103 - 111
  • [37] Over-Expression of LcPDS, LcZDS, and LcCRTISO, Genes From Wolfberry for Carotenoid Biosynthesis, Enhanced Carotenoid Accumulation, and Salt Tolerance in Tobacco
    Li, Chen
    Ji, Jing
    Wang, Gang
    Li, Zhaodi
    Wang, Yurong
    Fan, Yajun
    FRONTIERS IN PLANT SCIENCE, 2020, 11
  • [38] Metabolic engineering of Lilium × formolongi using multiple genes of the carotenoid biosynthesis pathway
    Pejman Azadi
    Ntui Valentaine Otang
    Dong Poh Chin
    Ikuo Nakamura
    Masaki Fujisawa
    Hisashi Harada
    Norihiko Misawa
    Masahiro Mii
    Plant Biotechnology Reports, 2010, 4 : 269 - 280
  • [39] Mitochondrial expression of metabolic enzymes for improving carotenoid production in Saccharomyces cerevisiae
    Matsumoto, Takuya
    Osawa, Tomoki
    Taniguchi, Hikaru
    Saito, Akira
    Yamada, Ryosuke
    Ogino, Hiroyasu
    BIOCHEMICAL ENGINEERING JOURNAL, 2022, 189
  • [40] Isolation, expression, and microRNAs analysis of genes related to carotenoid metabolism in peach fruits
    Zhang, C. H.
    Ma, R. J.
    Zhang, Y. Y.
    Yu, M. L.
    IX INTERNATIONAL PEACH SYMPOSIUM, 2021, 1304 : 121 - 131